Literature DB >> 27855986

Human cochlear hydrodynamics: A high-resolution μCT-based finite element study.

Annalisa De Paolis1, Hirobumi Watanabe2, Jeremy T Nelson3, Marom Bikson1, Mark Packer3, Luis Cardoso4.   

Abstract

Measurements of perilymph hydrodynamics in the human cochlea are scarce, being mostly limited to the fluid pressure at the basal or apical turn of the scalae vestibuli and tympani. Indeed, measurements of fluid pressure or volumetric flow rate have only been reported in animal models. In this study we imaged the human ear at 6.7 and 3-µm resolution using µCT scanning to produce highly accurate 3D models of the entire ear and particularly the cochlea scalae. We used a contrast agent to better distinguish soft from hard tissues, including the auditory canal, tympanic membrane, malleus, incus, stapes, ligaments, oval and round window, scalae vestibule and tympani. Using a Computational Fluid Dynamics (CFD) approach and this anatomically correct 3D model of the human cochlea, we examined the pressure and perilymph flow velocity as a function of location, time and frequency within the auditory range. Perimeter, surface, hydraulic diameter, Womersley and Reynolds numbers were computed every 45° of rotation around the central axis of the cochlear spiral. CFD results showed both spatial and temporal pressure gradients along the cochlea. Small Reynolds number and large Womersley values indicate that the perilymph fluid flow at auditory frequencies is laminar and its velocity profile is plug-like. The pressure was found 102-106° out of phase with the fluid flow velocity at the scalae vestibule and tympani, respectively. The average flow velocity was found in the sub-µm/s to nm/s range at 20-100Hz, and below the nm/s range at 1-20kHz.
Copyright © 2016 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Cochlea hydrodynamics; Computational fluid dynamics; High-resolution microCT imaging; Perilymph flow velocity; Perilymph pressure

Mesh:

Substances:

Year:  2016        PMID: 27855986      PMCID: PMC5292244          DOI: 10.1016/j.jbiomech.2016.11.020

Source DB:  PubMed          Journal:  J Biomech        ISSN: 0021-9290            Impact factor:   2.712


  18 in total

1.  Fluid volume displacement at the oval and round windows with air and bone conduction stimulation.

Authors:  Stefan Stenfelt; Naohito Hato; Richard L Goode
Journal:  J Acoust Soc Am       Date:  2004-02       Impact factor: 1.840

2.  Intracochlear Scala Media Pressure Measurement: Implications for Models of Cochlear Mechanics.

Authors:  Sushrut S Kale; Elizabeth S Olson
Journal:  Biophys J       Date:  2015-12-15       Impact factor: 4.033

3.  Inertial bone conduction: symmetric and anti-symmetric components.

Authors:  Namkeun Kim; Kenji Homma; Sunil Puria
Journal:  J Assoc Res Otolaryngol       Date:  2011-03-01

Review 4.  The physics of hearing: fluid mechanics and the active process of the inner ear.

Authors:  Tobias Reichenbach; A J Hudspeth
Journal:  Rep Prog Phys       Date:  2014-07-09

5.  Direct measurement of longitudinal endolymph flow rate in the guinea pig cochlea.

Authors:  A N Salt; R Thalmann; D C Marcus; B A Bohne
Journal:  Hear Res       Date:  1986       Impact factor: 3.208

6.  Volume flow rate of perilymph in the guinea-pig cochlea.

Authors:  K Ohyama; A N Salt; R Thalmann
Journal:  Hear Res       Date:  1988-09-15       Impact factor: 3.208

7.  3D assessment of cortical bone porosity and tissue mineral density using high-resolution µCT: effects of resolution and threshold method.

Authors:  Paolo E Palacio-Mancheno; Adriana I Larriera; Stephen B Doty; Luis Cardoso; Susannah P Fritton
Journal:  J Bone Miner Res       Date:  2014-01       Impact factor: 6.741

8.  A dual wedge microneedle for sampling of perilymph solution via round window membrane.

Authors:  Hirobumi Watanabe; Luis Cardoso; Anil K Lalwani; Jeffrey W Kysar
Journal:  Biomed Microdevices       Date:  2016-04       Impact factor: 2.838

9.  A three-dimensional finite element model of round window membrane vibration before and after stapedotomy surgery.

Authors:  Monika Kwacz; Piotr Marek; Paweł Borkowski; Maciej Mrówka
Journal:  Biomech Model Mechanobiol       Date:  2013-03-05

10.  Differential intracochlear sound pressure measurements in normal human temporal bones.

Authors:  Hideko Heidi Nakajima; Wei Dong; Elizabeth S Olson; Saumil N Merchant; Michael E Ravicz; John J Rosowski
Journal:  J Assoc Res Otolaryngol       Date:  2008-12-09
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  3 in total

Review 1.  Analytical and numerical modeling of the hearing system: Advances towards the assessment of hearing damage.

Authors:  Annalisa De Paolis; Marom Bikson; Jeremy T Nelson; J Alexander de Ru; Mark Packer; Luis Cardoso
Journal:  Hear Res       Date:  2017-02-02       Impact factor: 3.208

2.  Theoretical Evaluation and Experimental Validation of Localized Therapeutic Hypothermia Application to Preserve Residual Hearing After Cochlear Implantation.

Authors:  Ilmar Tamames; Curtis King; Chin-Yuh Huang; Fred F Telischi; Michael E Hoffer; Suhrud M Rajguru
Journal:  Ear Hear       Date:  2018 Jul/Aug       Impact factor: 3.570

3.  Computational Modeling of Deep Tissue Heating by an Automatic Thermal Massage Bed: Predicting the Effects on Circulation.

Authors:  Jacek P Dmochowski; Niranjan Khadka; Luis Cardoso; Edson Meneses; Kiwon Lee; Sungjin Kim; Youngsoo Jin; Marom Bikson
Journal:  Front Med Technol       Date:  2022-06-14
  3 in total

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